正弦探头:提高电极寿命的新方法。

Harbaljit S Sohal, Andrew Jackson, Richard Jackson, Gavin J Clowry, Konstantin Vassilevski, Anthony O'Neill, Stuart N Baker
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引用次数: 95

摘要

大脑和植入电极之间的微运动是侵入性脑机接口失效的主要原因。电极尖端的运动导致记录不稳定,而在植入后的几周/几个月内,由于持续的机械损伤引起的神经胶质细胞激活,峰值振幅下降。我们设计了一个正弦探头,以减少记录尖端相对于周围神经组织的运动。该探针由柔性材料制成,并包含一个正弦轴,以最大限度地减少系绳力,以及一个3D球形尖端,将记录位置固定在大脑内。与标准微丝电极相比,在长达678天的记录期内,家兔正弦探头记录的信噪比和局部场电位更加稳定。小胶质细胞和星形胶质细胞的组织学定量显示,在植入后6至24个月,神经组织损伤减少,尤其是尖端区域。我们建议将微动减少措施纳入我们的设计中,至少部分地减少了胶质瘤的大小,从而延长了记录的寿命。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The sinusoidal probe: a new approach to improve electrode longevity.

Micromotion between the brain and implanted electrodes is a major contributor to the failure of invasive brain-machine interfaces. Movements of the electrode tip cause recording instabilities while spike amplitudes decline over the weeks/months post-implantation due to glial cell activation caused by sustained mechanical trauma. We have designed a sinusoidal probe in order to reduce movement of the recording tip relative to the surrounding neural tissue. The probe was microfabricated from flexible materials and incorporated a sinusoidal shaft to minimize tethering forces and a 3D spheroid tip to anchor the recording site within the brain. Compared to standard microwire electrodes, the signal-to-noise ratio and local field potential power of sinusoidal probe recordings from rabbits was more stable across recording periods up to 678 days. Histological quantification of microglia and astrocytes showed reduced neuronal tissue damage especially for the tip region between 6 and 24 months post-implantation. We suggest that the micromotion-reducing measures incorporated into our design, at least partially, decreased the magnitude of gliosis, resulting in enhanced longevity of recording.

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